Reactivation of a silenced H19 gene in human rhabdomyosarcoma by demethylation of DNA but not by histone hyperacetylation

被引:37
作者
Lynch C.A. [1 ]
Tycko B. [2 ]
Bestor T.H. [3 ]
Walsh C.P. [1 ]
机构
[1] Cancer and Ageing Research Group, School of Biomedical Sciences, University of Ulster
[2] Institute of Cancer Genetics, Russ Berie Research Pavillion, Columbia University, New York, NY 10032
[3] Dept. of Genetics and Development, College of Physicians/Surgeons, Columbia University, New York
关键词
Histone Acetylation; HDAC Inhibitor; Sodium Butyrate; Acetylation Level; Igf2 Gene;
D O I
10.1186/1476-4598-1-2
中图分类号
学科分类号
摘要
Background: The active copy of the imprinted gene H19 is turned off by inappropriate methylation in several pediatric tumors including Wilms' Tumour and embryonal rhabdomyosarcoma. H19 controls in cis the linked Insulin-like Growth Factor 2 (IGF2) gene, encoding an important growth factor. Recent work has suggested that methylation of a gene may lead to deacetylation of its associated histones and that silenced genes can be reactivated by increasing histone acetylation levels. Results: Treatment of a rhabdomyosarcoma cell line which has a silent, methylated H19 gene with histone deacetylase (HDAC) inhibitors under conditions which gave maximal hyperacetylation of histone 4, both globally and at the H19 gene itself could not reactivate H19 or affect the active Insulin-like Growth Factor 2 (IGF2) gene, but caused clear up-regulation of the Tissue-type Plasminogen Activator (TPA) gene, a non-imprinted gene known to respond to changes in histone acetylation. In contrast, mild treatment of the cells with the methylation inhibitor 5-AzaC-2′-deoxycytidine (AzaC) on its own was able to reactivate H19. Combining AzaC treatment with HDAC inhibitors gave a reduced rather than enhanced reactivation. These findings were confirmed in mouse primary liver and kidney explants which maintain normal imprinting, where we also found that the silent Igf2 gene could not be reactivated by HDAC inhibitors. Conclusion: These results suggest that DNA methylation rather than histone acetylation is the primary determinant of silencing of H19 in rhabdomyosarcoma. © 2002 Lynch et al; licensee BioMed Central Ltd.
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